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The resource theory of stabilizer quantum computation

New Journal of Physics · 2014 · Vol. 16(1) · pp. 013009–013009
Victor VeitchS A Hamed MousavianDaniel GottesmanJoseph Emerson

Abstract

Recent results on the non-universality of fault-tolerant gate sets underline the critical role of resource states, such as magic states, to power scalable, universal quantum computation. Here we develop a resource theory, analogous to the theory of entanglement, that is relevant for fault-tolerant stabilizer computation. We introduce two quantitative measures—monotones—for the amount of non-stabilizer resource. As an application we give absolute bounds on the efficiency of magic state distillation. One of these monotones is the sum of the negative entries of the discrete Wigner representation of a quantum state, thereby resolving a long-standing open question of whether the degree of negativity in a quasi-probability representation is an operationally meaningful indicator of quantum behavior.

Quantum Information and CryptographyQuantum Mechanics and ApplicationsQuantum Computing Algorithms and ArchitectureQuantum entanglementPhysicsComputationResource dependence theoryQuantum computerStatistical physicsQuantumMAGIC (telescope)ScalabilityQuantum mechanics
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478
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References
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